4.6 Article

Quantifying the frequency of synchronous carbon and nitrogen export to the river network

Journal

BIOGEOCHEMISTRY
Volume 152, Issue 1, Pages 1-12

Publisher

SPRINGER
DOI: 10.1007/s10533-020-00741-z

Keywords

Concentration-discharge relationships; Dissolved organic carbon; Nitrate; Sensors; Fluorescent dissolved organic matter; River networks

Funding

  1. National Science Foundation
  2. New Hampshire Agricultural Experiment Station
  3. USDA National Institute of Food and Agriculture (McIntire-Stennis) Project [1006760]
  4. EPSCoR project Canary in the Watershed [NSF EPS-1929148]
  5. EPSCoR project Ecosystems and Society [NSF EPS-1101245]

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The research shows that synchronous export of C and N in river networks only occurs 57% of the time, with the highest frequency of asynchronous c-Q behavior observed in more human-impacted watersheds.
The biogeochemical cycles of carbon (C) and nitrogen (N) are inextricably linked for a range of reactions. For coupled reactions such as denitrification to occur, however, solutes must be found together in space and time. Using the framework of concentration-discharge (c-Q) relationships, we examine the frequency of synchronous C and N export (i.e. identical c-Q behavior) across a river network using > 5 years of high-frequency sensor data. We demonstrate that across space and time the export of C and N to a river network is asynchronous 57% of the time. The probability of simultaneous export in largely forested watersheds demonstrates little temporal structure, while in more human-impacted watersheds, we observe the highest frequency of asynchronous c-Q behavior. We discuss the implications of synchronous c-Q behavior for solute flux estimation models and develop a theoretical framework for predicting where within a landscape we expect the probability of coupled C and N reactions to be greatest. By simultaneously comparing the variability in C and N c-Q relationships we develop an integrated framework for predicting synchronous export of solutes.

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